题目描述
题解
因为晚上摸鱼去了所以没打
设i有p个0q个1,则i的EGF(乘上(p+q)后)为
(A=0:pe^{p+q}-p)
(A=1:pe^{p+q}+q)
分治卷起来之后求x^k即可,特判p=q=0
code
#include <bits/stdc++.h>
#define fo(a,b,c) for (a=b; a<=c; a++)
#define fd(a,b,c) for (a=b; a>=c; a--)
#define mod 998244353
#define Mod 998244351
#define G 3
#define ll long long
//#define file
using namespace std;
int c[100001],d[100001][2],N,N2,len,n,m,n1,n2,K,i,j,k,l;
ll A[131072],a[131072],b[131072],ans,s;
vector<ll> f[100001];
struct type{int s,id;} s1,s2;
bool operator < (type a,type b) {return a.s>b.s;}
priority_queue<type> hp;
ll qpower(ll a,int b) {ll ans=1; while (b) {if (b&1) ans=ans*a%mod;a=a*a%mod;b>>=1;} return ans;}
void dft(ll *a,int tp)
{
int i,j,k,l,S=N,s1=2,s2=1;
ll u,v,w,W;
fo(i,0,N-1)
{
j=i,k=0;
fo(l,1,len)
k=k*2+(j&1),j>>=1;
A[i]=a[k];
}
memcpy(a,A,N*8);
fo(i,1,len)
{
w=(tp==1)?qpower(G,(mod-1)/s1):qpower(G,(mod-1)-(mod-1)/s1),S>>=1;
fo(j,0,S-1)
{
W=1;
fo(k,0,s2-1)
{
u=a[j*s1+k],v=a[j*s1+k+s2]*W;
a[j*s1+k]=(u+v)%mod;
a[j*s1+k+s2]=(u-v)%mod;
W=W*w%mod;
}
}
s1<<=1,s2<<=1;
}
}
int main()
{
#ifdef file
freopen("d.in","r",stdin);
#endif
scanf("%d%d%d",&n,&m,&K),len=ceil(log2(n)),N=qpower(2,len);
fo(i,1,n) scanf("%d",&c[i]);
fo(i,1,m) scanf("%d%d",&j,&k),++d[j][k];
fo(i,1,n)
{
if (d[i][0])
{
fo(j,0,d[i][0]+d[i][1]) f[i].push_back(0);
f[i][d[i][0]+d[i][1]]=d[i][0];
f[i][0]=(c[i])?(-d[i][0]):d[i][1];
l=d[i][0]+d[i][1];
}
else
if (c[i]) {printf("0
");exit(0);}
else
f[i].push_back(d[i][1]),l=0;
if (d[i][0] || d[i][1])
hp.push({l,i});
}
while (hp.size()>1)
{
s1=hp.top(),hp.pop();
s2=hp.top(),hp.pop();
n1=s1.s,n2=s2.s;
len=ceil(log2(n1+n2+1)),N=qpower(2,len),N2=qpower(N,Mod);
memset(a,0,N*8),memset(b,0,N*8);
fo(i,0,n1) a[i]=f[s1.id][i];
fo(i,0,n2) b[i]=f[s2.id][i];
dft(a,1),dft(b,1);
fo(i,0,N-1) a[i]=a[i]*b[i]%mod;
dft(a,-1);
fo(i,0,N-1) a[i]=a[i]*N2%mod;
s1.s=n1+n2;
fo(i,0,s2.s) f[s1.id].push_back(0);
fo(i,0,s1.s) f[s1.id][i]=a[i];
hp.push(s1);
}
s1=hp.top();
fo(i,0,s1.s) s=f[s1.id][i],s=(s+mod)%mod,ans=(ans+s*qpower(i,K))%mod;
fo(i,1,n) if (d[i][0]+d[i][1]) ans=ans*qpower(d[i][0]+d[i][1],Mod)%mod;
printf("%lld
",(ans+mod)%mod);
fclose(stdin);
fclose(stdout);
return 0;
}